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相关概念视频

The Quantum-Mechanical Model of an Atom02:45

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Shortly after de Broglie published his ideas that the electron in a hydrogen atom could be better thought of as being a circular standing wave instead of a particle moving in quantized circular orbits, Erwin Schrödinger extended de Broglie’s work by deriving what is now known as the Schrödinger equation. When Schrödinger applied his equation to hydrogen-like atoms, he was able to reproduce Bohr’s expression for the energy and, thus, the Rydberg formula governing...
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The Uncertainty Principle04:08

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Werner Heisenberg considered the limits of how accurately one can measure properties of an electron or other microscopic particles. He determined that there is a fundamental limit to how accurately one can measure both a particle’s position and its momentum simultaneously. The more accurate the measurement of the momentum of a particle is known, the less accurate the position at that time is known and vice versa. This is what is now called the Heisenberg uncertainty principle. He...
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A substance that reaches superconductivity, a state in which magnetic fields cannot penetrate, and there is no electrical resistance, is referred to as a superconductor. In 1911, Heike Kamerlingh Onnes of Leiden University, a Dutch physicist, observed a relation between the temperature and the resistance of the element mercury. The mercury sample was then cooled in liquid helium to study the linear dependence of resistance on temperature. It was observed that, as the temperature decreased, the...
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The physical form of a substance changes on changing its temperature. For example, raising the temperature of a liquid causes the liquid to vaporize (convert into vapor). The process is called vaporization—a surface phenomenon. Vaporization occurs when the thermal motion of the molecules overcome the intermolecular forces, and the molecules (at the surface) escape into the gaseous state. When a liquid vaporizes in a closed container, gas molecules cannot escape. As these gas phase...
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An idealized LC circuit of zero resistance can oscillate without any source of emf by shifting the energy stored in the circuit between the electric and magnetic fields. In such an LC circuit, if the capacitor contains a charge q before the switch is closed, then all the energy of the circuit is initially stored in the electric field of the capacitor. This energy is given by
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The vacuum level denotes the energy threshold required for an electron to escape from a material surface. It is usually positioned above the conduction band of a semiconductor and acts as a benchmark for comparing electron energies within various materials.
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量子化超流体"原子电子"电路中的歇斯底里.

Stephen Eckel1, Jeffrey G Lee1, Fred Jendrzejewski1

  • 1Joint Quantum Institute, National Institute of Standards and Technology and University of Maryland, Gaithersburg, Maryland 20899, USA.

Nature
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概括

研究人员首次观察到超流体斯-爱因斯坦凝结物的歇斯底里,这对于原子电子设备至关重要. 这一发现弥合了理论和实验之间的差距,为新的量子技术铺平了道路.

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科学领域:

  • 原子电子公司Atomtronics
  • 量子物理学的量子物理学
  • 凝聚物质物理学 凝聚物质物理学

背景情况:

  • 原子电子学是一个新兴的领域,在类似于电子设备的电路中使用超冷原子.
  • 歇斯底里斯在电子和超导性中是基本的,但在超流体斯-爱因斯坦凝结体中没有观察到.
  • 之前对超流体中歇斯底里的观测缺乏量化流量或是间接的.

研究的目的:

  • 直接检测和描述超流体斯-爱因斯坦凝聚体中的歇斯底里.
  • 调查激发和消散在超流体歇斯底里中的作用.
  • 探索原子电子器件中受控歇斯底里的潜力.

主要方法:

  • 用超流体斯-爱因斯坦凝结环制造一个原子电子电路.
  • 引入一个旋转的弱环来阻碍超流体流动.
  • 在量子化循环状态之间直接检测歇斯底里.

主要成果:

  • 在超流体斯-爱因斯坦凝结体中,在量子化循环状态之间直接观察歇斯底里.
  • 可调整的hysteresis循环大小的演示.
  • 确定旋作为关键刺激,并确认散射的作用.

结论:

  • 现在在超流体斯-爱因斯坦凝结体中实验证实了hysteresis.
  • 原子电子电路中的受控歇斯底里可能使新的量子设备成为可能.
  • 这项工作弥合了理解超流体动力学和原子电子学的关键差距.